In this note, the authors discuss the contribution that frictional sliding of ice floes (or floe aggregates) past
each other and pressure ridging make to the plastic yield curve of sea ice. Using results from a previous study
that explicitly modeled the amount of sliding and ridging that occurs for a given global strain rate, it is noted
that the relative contribution of sliding and ridging to ice stress depends upon ice thickness. The implication is
that the shape and size of the plastic yield curve is dependent upon ice thickness. The yield-curve shape
dependence is in addition to plastic hardening/weakening that relates the size of the yield curve to ice thickness.
In most sea ice dynamics models the yield-curve shape is taken to be independent of ice thickness. The authors
show that the change of the yield curve due to a change in the ice thickness can be taken into account by a
weighted sum of two thickness-independent rheologies describing ridging and sliding effects separately. It would
be straightforward to implement the thickness-dependent yield-curve shape described here into sea ice models
used for global or regional ice prediction